Depolarization of multidomain ferroelectric materials

Journal Article (2019)
Authors

Dong Zhao (Max-Planck Institute of Iron and Steel Research, Max Planck Institute for Polymer Research)

Thomas Lenz (Max Planck Institute for Polymer Research, Graduate School Materials Science in Mainz)

Gerwin H. Gelinck (TNO, Eindhoven University of Technology)

Pim Groen (TU Delft - Aerospace Structures & Materials)

Dragan Damjanovic (École Polytechnique Fédérale de Lausanne)

Dago De Leeuw (Max Planck Institute for Polymer Research, Novel Aerospace Materials)

Ilias Katsouras (TNO)

Research Group
Novel Aerospace Materials
Copyright
© 2019 Dong Zhao, Thomas Lenz, Gerwin H. Gelinck, W.A. Groen, Dragan Damjanovic, D.M. de Leeuw, Ilias Katsouras
To reference this document use:
https://doi.org/10.1038/s41467-019-10530-4
More Info
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Publication Year
2019
Language
English
Copyright
© 2019 Dong Zhao, Thomas Lenz, Gerwin H. Gelinck, W.A. Groen, Dragan Damjanovic, D.M. de Leeuw, Ilias Katsouras
Research Group
Novel Aerospace Materials
Issue number
1
Volume number
10
DOI:
https://doi.org/10.1038/s41467-019-10530-4
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Abstract

Depolarization in ferroelectric materials has been studied since the 1970s, albeit quasi-statically. The dynamics are described by the empirical Merz law, which gives the polarization switching time as a function of electric field, normalized to the so-called activation field. The Merz law has been used for decades; its origin as domain-wall depinning has recently been corroborated by molecular dynamics simulations. Here we experimentally investigate domain-wall depinning by measuring the dynamics of depolarization. We find that the boundary between thermodynamically stable and depolarizing regimes can be described by a single constant, Pr0εferroEc. Among different multidomain ferroelectric materials the values of coercive field, Ec, dielectric constant, εferro, and remanent polarization, Pr, vary by orders of magnitude; the value for Pr0εferroEc however is comparable, about 15. Using this extracted universal value, we show that the depolarization field is similar to the activation field, which corresponds to the transition from creep to domain-wall flow.